JPH0533699A - Starting excess fuel injection method of multipoint injection engine - Google Patents
Starting excess fuel injection method of multipoint injection engineInfo
- Publication number
- JPH0533699A JPH0533699A JP19036891A JP19036891A JPH0533699A JP H0533699 A JPH0533699 A JP H0533699A JP 19036891 A JP19036891 A JP 19036891A JP 19036891 A JP19036891 A JP 19036891A JP H0533699 A JPH0533699 A JP H0533699A
- Authority
- JP
- Japan
- Prior art keywords
- cylinder
- cylinders
- discriminated
- signal
- fuel
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Landscapes
- Electrical Control Of Air Or Fuel Supplied To Internal-Combustion Engine (AREA)
- Combined Controls Of Internal Combustion Engines (AREA)
Abstract
Description
【0001】[0001]
【産業上の利用分野】本発明は、MPI(マルチポイン
トインジェクション)エンジンの始動燃料噴射方法に関
する。BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to a starting fuel injection method for an MPI (multipoint injection) engine.
【0002】[0002]
【従来の技術】MPIエンジンでは、各気筒に対応した
吸気マニホルドに燃料噴射弁が1つづつ設けられている
ため、始動時には基準となる気筒のTDC(上死点)を
判別した後、順次各気筒に燃料を必要量噴射していく
(シーケンシャル噴射)。2. Description of the Related Art In an MPI engine, a fuel injection valve is provided in each intake manifold corresponding to each cylinder. Therefore, at the time of starting, the TDC (top dead center) of the reference cylinder is determined, and then each of them is sequentially processed. A required amount of fuel is injected into the cylinder (sequential injection).
【0003】図2,図3にはクランク角センサの概略を
示してある。基準となる気筒の判別は、このクランク角
センサを用いて行なう。2 and 3 schematically show a crank angle sensor. The reference cylinder is discriminated using this crank angle sensor.
【0004】エンジンのカム軸1の後端には円盤2が取
付けられ、円盤2には同心状態に2系統のスリットが形
成されている。内周側のスリット3は気筒数に対応して
6箇所形成され、外周側のスリット4は基準となる気筒
(例えば#1気筒)に対応したものだけが長くその他は
短かく計4箇所形成されている。A disc 2 is attached to the rear end of the camshaft 1 of the engine, and the disc 2 has two slits formed concentrically. The slits 3 on the inner peripheral side are formed at 6 positions corresponding to the number of cylinders, and the slits 4 on the outer peripheral side are formed at a total of 4 positions which are long corresponding to the reference cylinder (for example, # 1 cylinder) and other short. ing.
【0005】図3に示すように、スリット3,4を挾ん
でフォトダイオード5及びフォトセンサ6が設けられ、
フォトダイオード5から発せられた光がスリット3,4
を横切ってフォトセンサ6により断続的に感知される。
スリット3を横切って感知された光はSGT信号として
制御装置に出力され、スリット4を横切って感知された
光はSGC信号として制御装置に出力される。制御装置
では、SGT信号及びSGC信号を基にして#1気筒を
判別して燃料噴射弁に駆動指令を与える。尚、スリット
3,4はTDCの手前5度で光を感知するようになって
いる。As shown in FIG. 3, a photodiode 5 and a photosensor 6 are provided so as to sandwich the slits 3 and 4.
The light emitted from the photodiode 5 is slits 3, 4
Is intermittently sensed by the photosensor 6 across.
The light detected across the slit 3 is output to the controller as an SGT signal, and the light detected across the slit 4 is output to the controller as an SGC signal. The control device determines the # 1 cylinder based on the SGT signal and the SGC signal and gives a drive command to the fuel injection valve. The slits 3 and 4 are designed to detect light 5 degrees before TDC.
【0006】図4には始動時の燃料噴射状況を示してあ
る。FIG. 4 shows the state of fuel injection at the time of starting.
【0007】図に示すように、始動開始時は全ての気筒
に対して始動燃料を噴射し、その後SGC信号で#1気
筒を判別するまでは全ての気筒に対して始動燃料の1/
6の量の燃料を噴射する。SGC信号で#1気筒を判別
した後、SGT信号に基づいて順次点火される気筒に始
動燃料を噴射する(シーケンシャル噴射)。As shown in the figure, at the start of starting, the starting fuel is injected into all the cylinders, and thereafter, until the # 1 cylinder is discriminated by the SGC signal, 1 / of the starting fuel is supplied to all the cylinders.
Inject a quantity of fuel of 6. After the # 1 cylinder is discriminated by the SGC signal, the starting fuel is injected into the cylinders that are sequentially ignited based on the SGT signal (sequential injection).
【0008】上述したように、始動時に燃料を噴射する
ことで、遅れが生じることなく始動を開始することがで
き、シーケンシャル噴射により未燃燃料の排出を抑える
ことができる。As described above, by injecting the fuel at the time of starting, the starting can be started without delay, and the discharge of unburned fuel can be suppressed by the sequential injection.
【0009】[0009]
【発明が解決しようとする課題】従来の始動燃料の噴射
方法では、始動時の未燃燃料の排出を低減するために、
シーケンシャル噴射を実施している。しかし、#1気筒
を判別するまでは全ての気筒に燃料を噴出しているの
で、最長、クランク2回転は燃焼しない燃料を噴射する
ことになってしまう。このため、未燃燃料が排気ガスと
して直接排出され、排ガス性能が悪化する虞があった。In the conventional starting fuel injection method, in order to reduce the emission of unburned fuel at the time of starting,
Sequential injection is carried out. However, since fuel is ejected to all the cylinders until the # 1 cylinder is discriminated, fuel that does not burn will be injected for the longest two crank revolutions. Therefore, unburned fuel is directly discharged as exhaust gas, which may deteriorate the exhaust gas performance.
【0010】[0010]
【課題を解決するための手段】上記課題を解決するため
の本発明のMPIエンジンの始動燃料噴射方法は、複数
の気筒のうち、カム軸の回転を検出することで開弁時期
が特定される2つの気筒を判別し、該2つの気筒のうち
どちらか一方が判別された後直ちにシーケンシャル噴射
を行なうことを特徴とする。In the starting fuel injection method for an MPI engine of the present invention to solve the above problems, the valve opening timing is specified by detecting the rotation of a cam shaft among a plurality of cylinders. It is characterized in that two cylinders are discriminated and that sequential injection is performed immediately after discriminating one of the two cylinders.
【0011】[0011]
【実施例】図1には本発明の一実施例に係る始動燃料噴
射方法を説明する信号波形を示してある。DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS FIG. 1 shows signal waveforms for explaining a starting fuel injection method according to an embodiment of the present invention.
【0012】気筒識別は、SGT信号の立上り及び立下
り時におけるSGC信号のレベルに基づいて行なわれ
る。Cylinder identification is performed based on the level of the SGC signal at the rising and falling edges of the SGT signal.
【0013】各気筒に対応するSGC信号及びSGT信
号の状態を見てみる。 #1気筒:SGT信号立上り時 SGC信号はハイ
(H)レベル。 SGT信号立下り時 SGC信号はHレベル。 #2気筒:SGT信号立上り時 SGC信号はロウ
(L)レベル。 :SGT信号立下り時 SGC信号はHレベル。 #3気筒:SGT信号立上り時 SGC信号はLレベ
ル。 :SGT信号立下り時 SGC信号はLレベル。 #4気筒:SGT信号立上り時 SGC信号はHレベ
ル。 :SGT信号立下り時 SGC信号はLレベル。 #5気筒:SGT信号立上り時 SGC信号はLレベ
ル。 :SGT信号立下り時 SGC信号はHレベル。 #6気筒:SGT信号立上り時 SGC信号はLレベ
ル。 :SGT信号立下り時 SGC信号はLレベル。The states of the SGC signal and the SGT signal corresponding to each cylinder will be examined. # 1 cylinder: SGT signal rises SGC signal is high (H) level. When the SGT signal falls The SGC signal is at H level. # 2 cylinder: SGT signal rises SGC signal is low (L) level. : When the SGT signal falls, the SGC signal is at H level. # 3 cylinder: SGT signal rises SGC signal is at L level. : When the SGT signal falls, the SGC signal is at L level. # 4 cylinder: SGT signal rises SGC signal is at H level. : When the SGT signal falls, the SGC signal is at L level. # 5 cylinder: SGT signal rises SGC signal is at L level. : When the SGT signal falls, the SGC signal is at H level. # 6 cylinder: SGT signal rises SGC signal is at L level. : When the SGT signal falls, the SGC signal is at L level.
【0014】SGT信号が立上り及び立下り時共にSG
C信号がHレベルであるのは#1気筒だけであり、SG
T信号が立上り時にSGC信号がHレベルでSGT信号
が立下り時にSGC信号がLレベルであるのは#4気筒
だけである。従って、#1気筒と#4気筒の開弁時期が
SGT信号とSGC信号に基づいて特定されることにな
る。When the SGT signal rises and falls, SG
Only the # 1 cylinder has the C signal at the H level.
Only the # 4 cylinder has the SGC signal at the H level when the T signal rises and the SGC signal at the L level when the SGT signal falls. Therefore, the valve opening timings of the # 1 cylinder and the # 4 cylinder are specified based on the SGT signal and the SGC signal.
【0015】始動燃料の噴射にあたり、#1気筒及び#
4気筒を特定することで#1気筒及び#4気筒を判別
し、#1気筒もしくは#4気筒を判別した後、直ちにシ
ーケンシャル噴射を開始する。In injecting the starting fuel, the # 1 cylinder and the # 1 cylinder
By identifying the four cylinders, the # 1 cylinder and the # 4 cylinder are determined, and after determining the # 1 cylinder or the # 4 cylinder, the sequential injection is immediately started.
【0016】上述した始動燃料噴射方法では、#1気筒
だけでなく#4気筒を判別した後にも直ちにシーケンシ
ャル噴射を行なうようにしたので、始動性が悪化する虞
はない。また、#1気筒もしくは#4気筒を判別するま
では燃料の噴射を行なわないので、未燃燃料が排出され
ることがない。In the above-described starting fuel injection method, since the sequential injection is performed immediately after determining not only the # 1 cylinder but also the # 4 cylinder, there is no fear that the startability deteriorates. Further, fuel is not injected until the # 1 cylinder or # 4 cylinder is discriminated, so that unburned fuel is not discharged.
【0017】[0017]
【発明の効果】本発明のMPIエンジンの始動燃料噴射
方法は、開弁時期が特定される2つの気筒を判別し、2
つの気筒のうちどちらか一方が判別された後直ちにシー
ケンシャル噴射を行なうようにしたので、始動性を悪化
させることなく未燃燃料の排出を防いで始動を行なうこ
とができる。The starting fuel injection method for an MPI engine of the present invention discriminates between two cylinders whose valve opening timing is specified, and
Since the sequential injection is performed immediately after one of the two cylinders is discriminated, the unburned fuel can be prevented from being discharged and the engine can be started without deteriorating the startability.
【図1】本発明の一実施例に係る始動燃料噴射方法を説
明する信号波形図。FIG. 1 is a signal waveform diagram illustrating a starting fuel injection method according to an embodiment of the present invention.
【図2】クランク角センサの概略構成図。FIG. 2 is a schematic configuration diagram of a crank angle sensor.
【図3】クランク角センサの概略構成図。FIG. 3 is a schematic configuration diagram of a crank angle sensor.
【図4】始動時の燃料噴射状況説明図。FIG. 4 is an explanatory view of a fuel injection state at the time of starting.
1 カム軸 2 円盤 3 スリット 4 スリット 5 フォトダイオード 6 フォトセンサ 1 cam shaft 2 disc 3 slit 4 slit 5 photodiode 6 photo sensor
Claims (1)
することで開弁時期が特定される2つの気筒を判別し、
該2つの気筒のうちどちらか一方が判別された後直ちに
シーケンシャル噴射を行なうことを特徴とするMPIエ
ンジンの始動燃料噴射方法。Claim: What is claimed is: 1. Among a plurality of cylinders, two cylinders whose valve opening timing is specified by detecting rotation of a camshaft are discriminated.
A starting fuel injection method for an MPI engine, wherein sequential injection is performed immediately after one of the two cylinders is discriminated.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP19036891A JPH0533699A (en) | 1991-07-30 | 1991-07-30 | Starting excess fuel injection method of multipoint injection engine |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP19036891A JPH0533699A (en) | 1991-07-30 | 1991-07-30 | Starting excess fuel injection method of multipoint injection engine |
Publications (1)
Publication Number | Publication Date |
---|---|
JPH0533699A true JPH0533699A (en) | 1993-02-09 |
Family
ID=16257021
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
JP19036891A Pending JPH0533699A (en) | 1991-07-30 | 1991-07-30 | Starting excess fuel injection method of multipoint injection engine |
Country Status (1)
Country | Link |
---|---|
JP (1) | JPH0533699A (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6584962B2 (en) | 2000-02-04 | 2003-07-01 | Hitachi, Ltd. | Engine control, apparatus for a multicylinder engine |
Citations (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH01240751A (en) * | 1988-03-18 | 1989-09-26 | Mitsubishi Electric Corp | Angle detecting device for internal combustion engine |
-
1991
- 1991-07-30 JP JP19036891A patent/JPH0533699A/en active Pending
Patent Citations (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH01240751A (en) * | 1988-03-18 | 1989-09-26 | Mitsubishi Electric Corp | Angle detecting device for internal combustion engine |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6584962B2 (en) | 2000-02-04 | 2003-07-01 | Hitachi, Ltd. | Engine control, apparatus for a multicylinder engine |
DE10104232B4 (en) * | 2000-02-04 | 2009-11-26 | Hitachi, Ltd. | Control device for multi-cylinder engines |
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Legal Events
Date | Code | Title | Description |
---|---|---|---|
A02 | Decision of refusal |
Free format text: JAPANESE INTERMEDIATE CODE: A02 Effective date: 19970506 |